School of Pharmaceutical Sciences, Zhengzhou University, Zhengzhou, 450001, China.
Key Laboratory of Targeting Therapy and Diagnosis for Critical Diseases, Zhengzhou University, Zhengzhou, 450001, P. R. China.
Adv Mater. 2022 Jul;34(27):e2201322. doi: 10.1002/adma.202201322. Epub 2022 Jun 3.
Microglial polarization is one of the most promising therapeutic strategies for multiple central nervous system (CNS) disorders. However, safe, effective, and controllable microglial regulation still faces formidable challenges. Although some anti-inflammatory factors promote microglia polarization, their short half-life, high cost, unpredictable in vivo behavior, and complex delivery operations, hamper their clinical application. Here, inspired by the natural microhemorrhage cleaning mechanism, an MG1 peptide and RVG29 peptide engineered nanoerythrocyte (NEMR) that can reprogram microglia are developed from classical M1 toward alternative M2 by inducing heme oxygenase-1 (HO-1), stimulating Notch1/Hes1/Stat3 signaling, and further inhibiting NF-κB p65 translocation. Moreover, anti-inflammatory carbon monoxide (CO) and bilirubin produced by endogenous metabolism of heme further reinforces the anti-inflammatory effect. In middle cerebral artery occlusion and experimental autoimmune encephalomyelitis models, a satisfactory prognosis is achieved, with precise regulation of inflammatory microglia in lesion sites, increased expression of anti-inflammatory factors, reduced blood-brain barrier permeability, as well as promotion of neurogenesis and functional recovery. Furthermore, NEMR can be integrated with clinical therapeutic agents, which facilitates precise drug delivery to enhance therapeutic effects. Hence, the natural nanoerythrocytes, as a feasible, efficient, safe, and practical tool, provides a new strategy for rebalancing of the immune environment in the CNS disorders.
小胶质细胞极化是治疗多种中枢神经系统 (CNS) 疾病最有前途的治疗策略之一。然而,安全、有效和可控的小胶质细胞调节仍然面临巨大的挑战。虽然一些抗炎因子促进小胶质细胞极化,但它们的半衰期短、成本高、体内行为不可预测且复杂的给药操作阻碍了它们的临床应用。在这里,受天然微出血清洁机制的启发,通过诱导血红素加氧酶-1 (HO-1)、刺激 Notch1/Hes1/Stat3 信号通路,以及进一步抑制 NF-κB p65 易位,开发了一种由经典 M1 向替代 M2 重编程的 MG1 肽和 RVG29 肽工程化纳米红细胞 (NEMR)。此外,内源性血红素代谢产生的抗炎性一氧化碳 (CO) 和胆红素进一步增强了抗炎作用。在大脑中动脉闭塞和实验性自身免疫性脑脊髓炎模型中,实现了令人满意的预后,病变部位炎症性小胶质细胞得到精确调节,抗炎因子表达增加,血脑屏障通透性降低,促进神经发生和功能恢复。此外,NEMR 可以与临床治疗药物结合,便于精确给药以增强治疗效果。因此,天然纳米红细胞作为一种可行、高效、安全且实用的工具,为 CNS 疾病中免疫环境的再平衡提供了新的策略。